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Dive into the research topics where Kana Takematsu is active.

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Featured researches published by Kana Takematsu.


Journal of the American Chemical Society | 2013

Tryptophan-accelerated electron flow across a protein-protein interface.

Kana Takematsu; Heather R. Williamson; Ana María Blanco-Rodríguez; Lucie Sokolova; Pavle Nikolovski; Jens T. Kaiser; Michael Towrie; Ian P. Clark; Antonín Vlček; Jay R. Winkler; Harry B. Gray

We report a new metallolabeled blue copper protein, Re126W122Cu(I) Pseudomonas aeruginosa azurin, which has three redox sites at well-defined distances in the protein fold: Re(I)(CO)3(4,7-dimethyl-1,10-phenanthroline) covalently bound at H126, a Cu center, and an indole side chain W122 situated between the Re and Cu sites (Re-W122(indole) = 13.1 Å, dmp-W122(indole) = 10.0 Å, Re-Cu = 25.6 Å). Near-UV excitation of the Re chromophore leads to prompt Cu(I) oxidation (<50 ns), followed by slow back ET to regenerate Cu(I) and ground-state Re(I) with biexponential kinetics, 220 ns and 6 μs. From spectroscopic measurements of kinetics and relative ET yields at different concentrations, it is likely that the photoinduced ET reactions occur in protein dimers, (Re126W122Cu(I))2 and that the forward ET is accelerated by intermolecular electron hopping through the interfacial tryptophan: *Re//←W122←Cu(I), where // denotes a protein-protein interface. Solution mass spectrometry confirms a broad oligomer distribution with prevalent monomers and dimers, and the crystal structure of the Cu(II) form shows two Re126W122Cu(II) molecules oriented such that redox cofactors Re(dmp) and W122-indole on different protein molecules are located at the interface at much shorter intermolecular distances (Re-W122(indole) = 6.9 Å, dmp-W122(indole) = 3.5 Å, and Re-Cu = 14.0 Å) than within single protein folds. Whereas forward ET is accelerated by hopping through W122, BET is retarded by a space jump at the interface that lacks specific interactions or water molecules. These findings on interfacial electron hopping in (Re126W122Cu(I))2 shed new light on optimal redox-unit placements required for functional long-range charge separation in protein complexes.


Chemical Physics Letters | 2013

Spectroscopic Studies of the Jahn-Teller Effect in the A2E" State of the Nitrate Radical NO3

Kana Takematsu; Nathan C. Eddingsaas; David J. Robichaud; Mitchio Okumura


Dalton Transactions | 2017

Two-photon spectroscopy of tungsten(0) arylisocyanides using nanosecond-pulsed excitation

Kana Takematsu; Sara A. M. Wehlin; Wesley Sattler; Jay R. Winkler; Harry B. Gray


Archive | 2015

Two- photon absorption spectroscopy of inorganic compounds

Kana Takematsu; Sara A. M. Wehlin; Wes Sattler; Jay R. Winkler; Harry B. Gray


Archive | 2014

Photoionization and dissociative ionization of the nitrate radical studied by threshold photoelectron photoion coincidence spectroscopy

Kana Takematsu; Gustavo Garcia; Laurent Nahon; John F. Stanton; Mitchio Okumura


Archive | 2014

Intra- and intermolecular electron hopping via tryptophan in azurin

Kana Takematsu; Heather R. Williamson; Jay R. Winkler; Harry B. Gray


Archive | 2014

Spectroscopy and kinetics of the peroxy radicals formed by chlorine-initiated oxidation of isoprene

Leah G. Dodson; Matthew D. Smarte; Kana Takematsu; Nathan C. Eddingsaas; Mitchio Okumura


Archive | 2014

Dynamics at conical intersections: Threshold photoelectron-photoion coincidence (T-PEPICO) spectroscopy of the nitrate cation NO3+

Kana Takematsu; Gustavo Garcia; Laurent Nahon; John F. Stanton; Mitchio Okumura


Archive | 2014

Kinetics and near-infrared spectroscopy of chlorine-substituted peroxy radicals

Matthew D. Smarte; Leah G. Dodson; Kana Takematsu; Nathan C. Eddingsaas; Mitchio Okumura


69th International Symposium on Molecular Spectroscopy | 2014

Spectroscopy And Dissociation Dynamics Of The No3+: A T-pepico Study

Mitchio Okumura; Laurent Nahon; John F. Stanton; Gustavo Garcia; Kana Takematsu

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Mitchio Okumura

California Institute of Technology

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Nathan C. Eddingsaas

California Institute of Technology

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Harry B. Gray

California Institute of Technology

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Jay R. Winkler

California Institute of Technology

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Leah G. Dodson

California Institute of Technology

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Gustavo Garcia

University of Nottingham

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David J. Robichaud

National Renewable Energy Laboratory

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Heather R. Williamson

University of Central Florida

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